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Impact of iron on nuclear glass alteration in geological repository conditions: A multiscale approach

机译:铁对地质储藏条件下核玻璃蚀变的影响:一种多尺度方法

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摘要

Interactions between nuclear glass and Fe were investigated in a clayey environment to better understand the mechanisms and driving forces controlling the long-term behavior of high-level waste glass in a geological repository. An integrated experiment involving a Glass-Iron-Clay (GIC) stack was run at a laboratory scale in anoxic conditions for 2. years and the interfaces were characterized by a multiscale approach using scanning electron microscopy coupled with energy dispersive spectroscopy, transmission electron microscopy, Raman microspectroscopy and scanning transmission X-ray microscopy at the SLS Synchrotron. The characterization of glass alteration patterns on cross sections revealed an increase in glass alteration with the Fe content and the proximity between the glass and Fe. The alteration layers are polyphase and stratified with an inner porous gel layer incorporating Fe and an outer layer composed of nanocrystalline Fe-silicates. Several mechanisms which could affect the glass alteration kinetics and the transport properties of the alteration layer are proposed to explain this pattern: (i) consumption of hydrolyzed silica by precipitation of Fe-silicates; (ii) penetration of Fe within the gel porosity probably as precipitates such as Fe oxyhydroxide or Fe-silicates. These new data may imply some consequences when considering the long-term behavior of glass in geological disposal conditions.
机译:在粘性环境中研究了核玻璃与铁之间的相互作用,以更好地了解控制地质处置库中高级废玻璃长期行为的机制和驱动力。在实验室规模的缺氧条件下,进行了包含玻璃-铁-粘土(GIC)烟囱的集成实验,历时2年,并采用扫描电子显微镜,能量色散光谱法,透射电子显微镜, SLS同步加速器的拉曼光谱和扫描透射X射线显微镜。截面上的玻璃蚀变图案的表征显示,随着Fe含量以及玻璃与Fe之间的接近,玻璃蚀变增加。蚀变层是多相的,并被一层内含Fe的多孔凝胶层和一层由纳米晶态铁硅酸盐组成的外层分层。提出了几种可能影响玻璃蚀变动力学和蚀变层传输特性的机理来解释这种模式:(i)通过硅酸铁的沉淀消耗水解二氧化硅; (ii)Fe在凝胶孔隙中的渗透可能是沉淀物,例如羟基氧化铁或硅酸铁。当考虑地质处置条件下玻璃的长期行为时,这些新数据可能暗示某些后果。

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